What is the nature of the uranium(iii)–arene bond?
文献信息
Sabyasachi Roy Chowdhury, Bess Vlaisavljevich
Complexes of the form [U(η6-arene)(BH4)3] where arene = C6H6; C6H5Me; C6H3-1,3,5-R3 (R = Et, iPr, tBu, Ph); C6Me6; and triphenylene (C6H4)3 were investigated towards an understanding of the nature of the uranium–arene interaction. Density functional theory (DFT) shows the interaction energy reflects the interplay between higher energy electron rich π-systems which drive electrostatic contributions, and lower energy electron poor π-systems which give rise to larger orbital contributions. The interaction is weak in all cases, which is consistent with the picture that emerges from a topological analysis of the electron density where metrics indicative of covalency show limited dependence on the nature of the ligand – the interaction is predominantly electrostatic in nature. Complete active space natural orbital analyses reveal low occupancy U–arene π-bonding interactions dominate in all cases, while δ-bonding interactions are only found with high-symmetry and electron-rich C6Me6. Finally, both DFT and multireference calculations on a reduced, formally U(II), congener, [U(C6Me6)(BH4)3]−, suggests the electronic structure (S = 1 or 2), and hence metal oxidation state, of such a species cannot be deduced from structural features such as arene distortion alone. We show that arene geometry strongly depends on the spin-state of the complex, but that in both spin-states the complex is best described as U(III) with an arene-centred radical.
期刊推荐

Current Opinion in Colloid & Interface Science

Chemical Communications

Russian Chemical Bulletin

Journal of Peptide Science

Russian Journal of Bioorganic Chemistry

Saudi Pharmaceutical Journal

Organic Process Research & Development

Acta Materialia

Russian Journal of Coordination Chemistry

Journal of Saudi Chemical Society
相关文献
Reversible intramolecular hydrogen transfer: a completely new mechanism for low impact sensitivity of energetic materials
Ying Xiong, Yu Ma, Xudong He, Xianggui Xue
DOI: 10.1039/C8CP06350H
Ionic conductivity and local structural features in Ce1−xSmxO2−x/2
S. Presto, M. M. Carnasciali, S. Massardo, M. Viviani
DOI: 10.1039/C8CP04186E
Effect of component content variation on composition and structure of activated carbon in PVDF:K2CO3
Wenliang Zhu, Kohei Okada, Zhong Li, Jiliang Zhu, Elia Marin, Giuseppe Pezzotti
DOI: 10.1039/C8CP06503A
Effects of the long octyl chain on complex formation of nickel(ii) with dimethyl sulfoxide, methanol, and acetonitrile in ionic liquid of [C8mim][TFSA]
Toshiyuki Takamuku, Hiroyuki Sakurai, Akira Ogawa, Atsuya Tashiro, Masahiro Kawano, Yutaro Kawazu, Koichiro Sadakane, Hiroki Iwase, Kazuhiko Ozutsumi
DOI: 10.1039/C8CP06345A
Communication through the furan ring: the conformational effect on the internal rotation of 5-methyl furfural studied by microwave spectroscopy
Najoua Derbel, Ha Vinh Lam Nguyen, Halima Mouhib
DOI: 10.1039/C8CP04563A
Size exclusion effect in binary inclusion compounds of α-cyclodextrin
Askar K. Gatiatulin, Viktoria Yu. Osel'skaya, Marat A. Ziganshin, Valery V. Gorbatchuk
DOI: 10.1039/C8CP03104E
Self-assembled structure and dynamics of imidazolium-based protic salts in water solution
R. Vijayaraghavan, Douglas R. MacFarlane
DOI: 10.1039/C8CP07254J
Manipulation of spin and magnetic anisotropy in bilayer magnetic molecular junctions
Xiaoguang Li, Xiao Zheng, Jinlong Yang
DOI: 10.1039/C8CP05759A
您可能还喜欢
2-(甲基磺酰基)嘧啶-5-胺(CAS号:56621-92-2)适用哪些法规指南?
该化合物适用的法规指南包括GHS(全球化学品统一分类和标签制度)分类为特定目标器官毒性-单次接触类别3;根据欧盟REACH法规,该化合物需要进行注册和评估;在美...
在合成中是否有4-(4-氯苯基)-1H-咪唑(CAS号:35512-29-9)的替代品?
在合成中,可以考虑使用一些类似的化合物作为4-(4-氯苯基)-1H-咪唑的替代品,如4-(4-溴苯基)-1H-咪唑或4-(4-甲氧基苯基)-1H-咪唑。这些化合...
什么是N~2~-甲基丙氨酸酰胺(CAS号:32012-16-1)?
N~2~-甲基丙氨酸酰胺是一种有机化合物,其化学名为2-(Methylamino)propanamide。它是一种酰胺类化合物,分子式为C4H10N2O,相对分...
如何处理含有N-苄基-3-氨基氧杂环丁烷草酸盐(CAS号:1956341-96-0)的废料?
处理含有N-苄基-3-氨基氧杂环丁烷草酸盐(CAS号:1956341-96-0)的废料时,应首先确保遵循相关法规要求,如GHS和REACH等。通常,废液应先进行...
4-bromo-2-chloro-6-methylbenzoic acid(CAS号:877149-07-0)的物理化学性质是什么?
4-溴-2-氯-6-甲基苯甲酸是一种固体化合物,具有较高的熔点和较低的沸点。它的分子量为261.03 g/mol。该化合物在水中几乎不溶,在有机溶剂中溶解度适中...
2-[(2,5-二氯-4-嘧啶)氨基]-N-甲基苯甲酰胺(CAS号:761440-08-8)通常如何合成?
该化合物通常通过缩合反应合成,典型的方法是将2,5-二氯嘧啶与N-甲基苯甲酰胺在碱性条件下进行偶联反应。常用的碱包括NaH、LDA等强碱。该合成路线具有较高的选...
在合成中是否有3,5-二溴-4-甲基苯胺(CAS号:13194-73-5)的替代品?
3,5-二溴-4-甲基苯胺在某些合成路线中可能没有直接替代品。然而,在某些应用场景下,可以考虑使用其他类似结构的化合物如3,5-二溴-4-硝基苯胺或3,5-二碘...
2-氯喹啉-4-羧酸甲酯(CAS号:62482-26-2)的主要用途是什么?
2-氯喹啉-4-羧酸甲酯主要用于有机合成和药物合成领域,作为中间体或原料。它在合成某些药物和染料时具有重要作用。此外,该化合物还可能用于某些特定的化学研究中。
i>]吡啶(CAS号:474708-88-8)安全吗?
6-溴-8-氯咪唑[1,2-a]吡啶在操作过程中需要谨慎以确保安全。该化合物具有一定的毒性,吸入其蒸气或粉尘可能导致呼吸道刺激。处理时应佩戴适当的防护装备,如手...
来源期刊
Chemical Science

Our journal has a wide-ranging scope which covers the full breadth of the chemical sciences. The research we publish contains the sorts of novel ideas, challenging questions and progressive thinking that bring undiscovered breakthroughs within reach. Your paper could focus on a single area, or cross many. It could be beyond the accepted bounds of the chemical sciences. It might address an immediate challenge, contribute to a future breakthrough or be wholly conceptual. We’re a team from every field of the chemical sciences, and know from experience that breakthroughs that drive the solutions to global challenges can come from anywhere, at any time. You could even start an entirely new area of research. Too bold? Too progressive? No such thing

![5-Methoxy-1H-pyrrolo[3,2-b]pyridine structure 5-Methoxy-1H-pyrrolo[3,2-b]pyridine structure](https://cnstatic.chemtradehub.com/structs/172/17288-40-3-a8d1.webp)
![2,4,5-Trichloro-7H-pyrrolo[2,3-d]pyrimidine structure 2,4,5-Trichloro-7H-pyrrolo[2,3-d]pyrimidine structure](https://cnstatic.chemtradehub.com/structs/105/1053228-28-6-fba3.webp)
![O-Benzyl-N-[(9H-fluoren-9-ylmethoxy)carbonyl]-N-methyl-L-threonine structure O-Benzyl-N-[(9H-fluoren-9-ylmethoxy)carbonyl]-N-methyl-L-threonine structure](https://cnstatic.chemtradehub.com/structs/198/198561-81-8-a56e.webp)
